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Updated: Feb 9, 2026

FIBS-enabled Noninvasive Metabolic Profiling
Published on: February 3, 2014
Glucocorticoid-dependent REDD1 expression reduces muscle metabolism to enable adaptation under energetic stress
Florian A Britto1, Fabienne Cortade1, Yassine Belloum1
1DMEM, Univ. Montpellier, INRA, Montpellier, France.
Background:
Skeletal muscle atrophy is a common feature of numerous chronic pathologies and is correlated with patient mortality. The REDD1 protein is currently recognized as a negative regulator of muscle mass through inhibition of the Akt/mTORC1 signaling pathway. REDD1 expression is notably induced following glucocorticoid secretion, which is a component of energy stress responses.
Results:
Unexpectedly, we show here that REDD1 instead limits muscle loss during energetic stresses such as hypoxia and fasting by reducing glycogen depletion and AMPK activation. Indeed, we demonstrate that REDD1 is required to decrease O2 and ATP consumption in skeletal muscle via reduction of the extent of mitochondrial-associated endoplasmic reticulum membranes (MAMs), a central hub connecting energy production by mitochondria and anabolic processes. In fact, REDD1 inhibits ATP-demanding processes such as glycogen storage and protein synthesis through disruption of the Akt/Hexokinase II and PRAS40/mTORC1 signaling pathways in MAMs. Our results uncover a new REDD1-dependent mechanism coupling mitochondrial respiration and anabolic processes during hypoxia, fasting, and exercise.
Conclusions:
Therefore, REDD1 is a crucial negative regulator of energy expenditure that is necessary for muscle adaptation during energetic stresses. This present study could shed new light on the role of REDD1 in several pathologies associated with energetic metabolism alteration, such as cancer, diabetes, and Parkinson's disease.
Insights
The REDD1 protein unexpectedly protects skeletal muscle from loss during energy stress by reducing energy consumption. This finding reveals a new mechanism for muscle adaptation in conditions like fasting and hypoxia.
Area of Science:
- Cell Biology
- Metabolism
- Muscle Physiology
Background:
- Skeletal muscle atrophy is linked to chronic diseases and mortality.
- The REDD1 protein typically inhibits muscle mass by blocking the Akt/mTORC1 pathway.
- REDD1 expression increases with glucocorticoids during energy stress.
Purpose of the Study:
- Investigate the role of REDD1 in muscle adaptation during energetic stress.
- Clarify the mechanism by which REDD1 influences muscle mass and energy metabolism.
- Explore REDD1's potential role in diseases with altered energy metabolism.
Main Methods:
- Assessed REDD1's effect on muscle loss during hypoxia and fasting.
- Measured oxygen and ATP consumption in skeletal muscle.
- Examined the impact of REDD1 on mitochondrial-associated endoplasmic reticulum membranes (MAMs) and related signaling pathways (Akt/Hexokinase II, PRAS40/mTORC1).
Main Results:
- REDD1 limits muscle loss during energetic stress by reducing glycogen depletion and AMPK activation.
- REDD1 decreases skeletal muscle O2 and ATP consumption by reducing MAMs.
- REDD1 inhibits ATP-consuming processes like glycogen storage and protein synthesis via MAMs signaling disruption.
Conclusions:
- REDD1 is essential for muscle adaptation to energy stress by negatively regulating energy expenditure.
- This study uncovers a novel REDD1-dependent mechanism linking mitochondrial respiration and anabolic processes.
- Findings suggest REDD1's importance in pathologies like cancer, diabetes, and Parkinson's disease.
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